WO2008091197A1 - Electrode array - Google Patents
Electrode array Download PDFInfo
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- WO2008091197A1 WO2008091197A1 PCT/SE2008/000051 SE2008000051W WO2008091197A1 WO 2008091197 A1 WO2008091197 A1 WO 2008091197A1 SE 2008000051 W SE2008000051 W SE 2008000051W WO 2008091197 A1 WO2008091197 A1 WO 2008091197A1
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- WO
- WIPO (PCT)
- Prior art keywords
- electrode array
- electrodes
- electrode
- matrix
- distal
- Prior art date
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Classifications
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/02—Details
- A61N1/04—Electrodes
- A61N1/05—Electrodes for implantation or insertion into the body, e.g. heart electrode
- A61N1/0526—Head electrodes
- A61N1/0529—Electrodes for brain stimulation
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/24—Detecting, measuring or recording bioelectric or biomagnetic signals of the body or parts thereof
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/02—Details
- A61N1/04—Electrodes
- A61N1/05—Electrodes for implantation or insertion into the body, e.g. heart electrode
- A61N1/0526—Head electrodes
- A61N1/0529—Electrodes for brain stimulation
- A61N1/0539—Anchoring of brain electrode systems, e.g. within burr hole
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/02—Details
- A61N1/04—Electrodes
- A61N1/05—Electrodes for implantation or insertion into the body, e.g. heart electrode
- A61N1/0551—Spinal or peripheral nerve electrodes
- A61N1/0553—Paddle shaped electrodes, e.g. for laminotomy
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N1/00—Electrotherapy; Circuits therefor
- A61N1/02—Details
- A61N1/04—Electrodes
- A61N1/05—Electrodes for implantation or insertion into the body, e.g. heart electrode
- A61N1/0551—Spinal or peripheral nerve electrodes
- A61N1/0558—Anchoring or fixation means therefor
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B2562/00—Details of sensors; Constructional details of sensor housings or probes; Accessories for sensors
- A61B2562/04—Arrangements of multiple sensors of the same type
- A61B2562/046—Arrangements of multiple sensors of the same type in a matrix array
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/40—Detecting, measuring or recording for evaluating the nervous system
- A61B5/4058—Detecting, measuring or recording for evaluating the nervous system for evaluating the central nervous system
- A61B5/407—Evaluating the spinal cord
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/40—Detecting, measuring or recording for evaluating the nervous system
- A61B5/4076—Diagnosing or monitoring particular conditions of the nervous system
- A61B5/4094—Diagnosing or monitoring seizure diseases, e.g. epilepsy
Definitions
- the invention relates to a medical electrode array for insertion into soft tissue such as the brain, the spinal cord, endocrine organs, muscles, and connective tissue, comprising a multitude of thin wire electrodes, to a method of its manufacture, and to uses of the electrode array.
- One object of the invention is to provide an electrode array of the aforementioned kind, individual electrodes of which are gaining in freedom of movement in respect of each other after the electrode array has been inserted into soft tissue.
- Another object of the invention is to provide an electrode array of the aforementioned kind, which can be easily positioned in a desired location in soft tissue and there anchored.
- An additional object of the invention is to provide an electrode array of the aforementioned kind that is retained in a chosen location in soft tissue over an extended period of time and that is not easily displaced by corporal movements of the person into which the electrode is implanted.
- Still another object of the invention is to provide an electrode array of the aforementioned kind that is easy to manufacture.
- the electrode array of the invention comprises a multitude of electrically conductive thin flexible, preferably resiliently flexible, electrodes embedded in a solid matrix that is dissolvable and/or degradable in an aqueous environment, such as in living tissue.
- the electrode array of the invention is intended for insertion into soft living tissue, in particular brain and spinal cord tissue, but also, for instance, into the liver, the kidneys or connective tissue. Once inserted, the matrix holding the electrodes is dissolved and/or degraded.
- the matrix acts as a glue or an adhesive keeping the electrodes in fixed positions in respect of each other until dissolved and/or degraded upon insertion of the electrode array into tissue.
- the electrode array of the invention is preferably generally symmetric in respect of a central axis thereof.
- the oblong electrode array of the invention has a distal end and a proximal end.
- distal refers to a portion of the electrode array that is further away from the person inserting the electrode array into tissue than a proximal portion thereof, and also to a direction of movement away from said person.
- At least proximal portions of the electrodes are disposed in parallel or about in parallel with the central axis.
- the electrode array of the invention can be of any suitable form, such as of circular, elliptic or substantially flat form in a transverse section in respect of the central axis.
- the central axis generally coincides with the axis of insertion of the electrode array into tissue.
- Distal terminal portions (front end portions) of all or some electrodes in an electrode array are disposed in parallel or in a configuration in which at least some of the electrodes are fanning out from the central axis or comprise fanning-out means operative upon dissolution and/or degradation of a matrix portion enclosing them by displacement of the electrode array in tissue in a distal direction
- the electrodes of the invention are preferably insulated except for at portions extending from their proximal and distal ends.
- the distal ends or tips of the electrodes, which are not insulated, can be of any suitable shape. Suitable shapes, in particular barbed tips, are disclosed in WO 2007/040442.
- each electrode is in electrically conductive contact with electronic equipment, preferably via a multi-lead flexible cable. This allows the individual electrodes to be addressed separately or in groups.
- the electrodes of the invention are of varying length and to be arranged in the electrode array around a central axis thereof with the longest electrodes at a short distance from the axis, the shortest electrodes at a longer distance from the axis, and the electrodes of intermediate length at intermediate distances from the axis so as to make their distal tips define an electrode array tip while their proximal ends are preferably disposed in a plane transverse to the axis. It is however also within the scope of the invention to arrange the electrodes in a manner forming a unilaterally slanting or otherwise not symmetric electrode array tip.
- the electrode array comprises one or more optical fibres to provide for radiative stimulation of the tissue or components thereof and/or for recording radiation emanating from surrounding tissue.
- the one or more optical fibres are kept in a selected position in the array by means of the matrix.
- the electrode array comprises one or more contractile bimetallic elements that change their shape, for instance bend, when electric current is passed through them.
- one or more contractile polymer elements comprised by the electrode array can be used to control its path of insertion.
- the electrode array comprises a distal terminal portion extending from the distal end and a main portion extending in a proximal direction from the distal terminal portion. It is preferred for the distal terminal portion to be tapering in a distal direction so as to form, for instance, a conical or flat triangular terminal distal portion.
- the terminal distal portion can have a blunt shape to minimize the risk of vascular ruptures during insertion of the electrode array.
- the matrix comprises two or more sections differing in their dissolution and/or degradation rates in soft tissue, in particular a first section comprised by the distal terminal portion and a second section comprised by the main portion of the electrode array and extending in the direction of the proximal end thereof, optionally to the proximal end so as to embed the proximal end therein.
- a short length of the distal electrode portion including electrode tip can extend distally or in an oblique distal direction from the first matrix section. It is preferred for the dissolution rate of the first matrix section to be substantially higher than the dissolution and/or degradation rate of the second matrix section but other solution/degradation rate relationships of the first and second matrix sections are also comprised by the invention.
- a matrix section On insertion of the electrode array into the target tissue, such as soft tissue of the brain, the first and second matrix portions come into contact with body fluid and are subsequently dissolved and/or degraded by this contact, the dissolution/degradation rate of the first portion being substantially greater than the dissolution/degradation rate of the second portion.
- a matrix section it is preferred for a matrix section to comprise a dissolution/degradation enhancing means such as channels that can be infiltrated by body fluid.
- a matrix section to have a porous structure.
- An electrode comprising two or three axially joining matrix sections, in particular two matrix sections, is preferred. It is preferred for a matrix section to comprise or to consist of a carbohydrate and/or a protein.
- a manually operated or other micromanipulator is attached or attachable to a proximal end portion of the electrode array, from which it extends in a proximal direction.
- the relative stiffness of the combination of electrodes and matrix of the electrode array provides for its easy insertion into tissue. Upon insertion, the first, distal matrix section is quickly dissolved. Thereby the distal terminal portion of an electrode becomes capable of lateral displacement in respect of neighbouring electrodes. Further insertion of the electrode array into the tissue causes distal portion of an electrode comprising a fanning-out means to bend in a direction generally away from the axis of the electrode array in an unfolding manner.
- Dissolution and/or degradation of the second matrix portion frees the proximal portion of an electrodes so that it becomes capable lateral and/or axial displacement in relation to neighbouring electrodes and to assume a floating disposition in the tissue; thereby its position in the tissue is stabilized and tissue reactions/injuries that otherwise would have occurred due to its joint movement with other electrodes be prevented.
- the electrode array comprises an insertion element, such as a contact element comprised by a micromanipulator, attached to its proximal end and extending from that end in a proximal direction.
- the insertion means is attached to the electrode array by an adhesive that is dissolvable in an aqueous environment. It is preferred for the adhesive to dissolve substantially more rapidly in body fluid than the material of the second matrix portion.
- one or more electrodes in the electrode array of the invention can be substituted by electrode bundle(s) of WO 2007/040442.
- the electrode array of the invention is suitable for long-lasting stimulation, multi-channel recordings of electrical neuronal activity and levels of transmitter substance through measurements of redox reactions and precise lesions of the tissue for scientific, medical and animal care purposes.
- Suitable materials for the matrix portions of the invention are of a biocompatible nature, such as carbohydrate and/or proteinaceous materials.
- the material selected for the first matrix section preferably has a dissolution rate in a body fluid at a temperature of about 37 0 C that allows the distal portions of an electrode to become free, that is, free floating, within a short time, such as within from 1 to 3 minutes.
- the material selected for the second matrix section is preferably one that has a dissolution or degradation rate in a body fluid at a temperature of about 37 0 C that allows the main portions of the electrodes to resist separation for at least 5 min, more preferred for at least 10 min, but in any event for a time that is substantially longer, such as longer by from 1 to 20 min or even longer, than the time required for the distal end portions of the same electrodes to lose restraint by the first matrix section.
- the invention is also disclosed a method of manufacturing the electrode array by disposing electrodes in parallel in an envelope or sheath having the contour of the distal end portion and the main portion of the electrode array and comprising a proximal opening, consecutively applying solutions or suspensions of the material first and second matrix materials to the electrodes the sheath, evaporating solvent from the solution or suspensions, respectively, in the sheath, and removing the sheath from the electrode array.
- the sheath is made of a material that can be easily removed from the electrode array.
- a preferred material for the sheath is a smooth material of low wettability such as a polyfluorinated hydrocarbon polymer or silicon rubber. It is also preferred for the sheath material to be porous, in particular micro-porous, to facilitate evaporation of solvent.
- the invention also relates to the use of the electrode array for long-lasting nerve stimulation, multi-channel recordings of electrical neuronal activity and levels of transmitter substance through measurements of redox reactions and lesions of the tissue for scientific, medical and animal care purposes.
- Fig. 1 A first embodiment of the electrode array of the invention comprising a multitude of electrodes embedded in a matrix, in a sectional view;
- FIG. 2 The embodiment of Fig. 1, immediately upon insertion into soft tissue, in the same view;
- Fig. 3 The embodiment of Fig. 1, inserted into soft tissue for a time sufficient for dissolution of a first matrix section, in the same view;
- Fig. 4 The embodiment of Fig. 1, inserted into soft tissue for a time sufficient for dissolution of a second matrix section, in the same view;
- FIG. 6 A third embodiment of the electrode array of the invention comprising an insertion guide element, in the same view as the embodiment in Fig. 1 (section C-C, Fig. 9);
- Fig. 7 The embodiment of Fig. 6, inserted into soft tissue for a time sufficient for dissolution of a first matrix section, in the same view;
- FIG. 8 A fourth embodiment of the electrode array of the invention, in the same view as the embodiment of Fig. 1;
- FIG. 9 A transverse section B-B through the embodiment of Fig. 6;
- FIG. 10 A fifth embodiment of the invention, in a transverse section corresponding to that of Fig. 9;
- Fig. 1 1 A sixth embodiment of the invention, in a transverse section corresponding to that of Fig. 9;
- FIG. 12 A seventh embodiment of the invention, in a transverse section corresponding to that of Fig. 9;
- Fig. 13 An eight embodiment of the invention, in a transverse section corresponding to that of Fig 9;
- FIG. 14 A ninth embodiment of the invention, in a transverse section corresponding to that of Fig. 6;
- FIG. 15 A prior art electrode (WO 2007/040442) incorporated in a electrode array of the invention, in a partial axial sectional view.
- the electrodes have a suitable diameter of from 10 '4 to 10 "7 m, in particular from 0.5 to 25 ⁇ m. Their diameter may change over their length to facilitate insertion into the tissue, in particular the electrode can be tapering towards their distal end. Their distal end can be sharp or blunt but a sharp tip is preferred. Their distal part may even have a diameter smaller than 10 "7 .
- the electrodes comprise an electrically conductive core of a metallic or polymer kind, in particular one of noble metal such as platinum or gold or an alloy comprising more than 30 % by weight of noble metal, and an non-conductive coat of, for instance, a polyfluoroalkene, a lacquer, or glass.
- the electrodes can also be made of a nonconductive supportive material such as glass, ceramic, natural or polymer fibre covered by or, in case of a tubiform supportive material, filled with an electrically conductive material such as a metal, in particular a noble metal or a noble metal alloy.
- a nonconductive supportive material such as glass, ceramic, natural or polymer fibre covered by or, in case of a tubiform supportive material, filled with an electrically conductive material such as a metal, in particular a noble metal or a noble metal alloy.
- useful non-conductive support materials are protein fibres such as silk or carbon such as carbon fibres including fibres comprising carbon nanotubes, which may also be used as a conductive electrode material.
- the electrically conductive material can be deposited on the support material by conventional sputtering or evaporation techniques.
- the surface of electrodes may either be smooth or uneven. An uneven or rugged surface close to the tips is preferred for improving the anchoring properties of the tips. However, other sections of the electrodes may also be given an uneven surface.
- the electrodes may also be equipped with flexible barbs that stop withdrawal of their withdrawal in a proximal direction. If the barbs are made of electrically conductive material they may also function as electrode tips and, in such case be not insulated.
- Glue 1 used for embedding a distal end portion of the electrodes has a dissolution rate at a temperature of 37 0 C in body fluid such as plasma or interstitial fluid that allows an electrode embedded therein to become unrestrained in regard of its displacement in respect of neighbouring electrodes within a short period of time, in particular within 0.5 to 3 minutes.
- Glue 2 is one that has a dissolution at a temperature of 37 0 C in body fluid such as plasma or interstitial fluid that allows an electrode embedded therein to become unrestrained in regard of its displacement in respect of neighbouring electrodes within from 1 to 10 minutes or more but in any event for a longer period of time than that required for the distal end portion to become unrestrained in its (lateral) displacement.
- Body fluid such as plasma or interstitial fluid
- Longer dissolution times for Glue 1 such as up to 20 minutes and correspondingly longer dissolution times for Glue 2 may be used in the context of a slow insertion procedure, such as an insertion of the corresponding electrode array into very deep tissue.
- Suitable materials for Glue 1 include disaccharides such as sucrose that had been boiled in water for 10-30 minutes or longer to yield dissolution times of 1-3 minutes. Boiling for an even longer time produces a glue with a longer dissolution time.
- Other glues that can be used for Glue 1 include gelatin that had been dissolved in water of 40-50 0 C and then allowed to dry.
- a suitable material for use as Glue 2 can be obtained by repeated boiling and cooling an aqueous solution containing a sugar or a mixture of sugars selected from sucrose, lactose, mannose, maltose, and an organic acid selected from citric acid, malic acid, phosphoric acid, and tartaric acid.
- Such glues have a dissolution time in the range of from 13 to 60 min (Erhan et al., 2003, US patent no. 6,613,378, incorporated herein by reference).
- Various combinations of sugars and organic acids render different dissolution times. Therefore it is also possible to use different combinations differing in dissolution times as Glue 1 and Glue 2.
- a combination of citric acid with mannose can result in a dissolution time of 13 min, whereas citric acid combined with sucrose can result in a dissolution time of about 30 minutes (US 6,613,378 Bl).
- these two combinations can be used as Glue 1 and Glue 2, respectively.
- Gelatin may also be used both for Glue 1 and for Glue 2. It is well known that different types of gelatin have different dissolution times. Hence, by selecting a proper combination of two different types of gelatin for Glue 1 and Glue 2 it is possible to achieve a faster dissolution time of the distal matrix portion of electrode array (Glue 1) than of the proximal matrix portion of electrode array (Glue 2). The use of a sugar-based glue for the distal matrix portion and of a gelatine -based glue for the proximal matrix portion or vice versa is also possible.
- glues with substantially longer dissolution times such as modified collagen, cellulose derivatives, modified starch or other biocompatible materials such as VICRYLTM can also be used as Glue 1 and Glue 2 in applications with a longer insertion procedure.
- the time for completion of the insertion procedure may take a relatively longer time.
- the electrode array is to be inserted into tissue located immediately below the skin or mucosa or near the surface of the brain or the spinal cord or another tissue, such as to a tissue depth of less than 2 mm, it may suffice to use a single glue, in particular a Glue 1, since only the distal part of the electrode array that is unfolding will be inside the tissue. In this case a Glue 2 disposed between the electrodes of the proximal part of the electrode array will not dissolve due to it retaining its dry state.
- Glue 2 can be used to hold electrode portions disposed in a central and/or a proximal section of the electrode array, whereas Glue 1 is used to hold electrode portions disposed between their distal ends and the section held by Glue 2.
- Arranging a centrally axially disposed agent capable of swelling in contact with aqueous media, which additionally is capable of acting as a glue, such as gelatin, provides a separate means for moving /unfolding the electrodes away from the longitudinal axis of the electrode array on contact with body fluid.
- the electrode array can be covered by a gliding agent to reduce the friction of electrode array during insertion into the tissue. The gliding agent can also retard the access of body fluid to the glue(s) and thereby the dissolution/degradation thereof.
- the first embodiment 1 of the electrode array of the invention of Fig. 1 comprises a number of thin gold electrodes 2, 2', 2" of varying length disposed in parallel around a central axis A. While the proximal ends of the electrodes 2, T , 2" are disposed in a plane transverse to the axis A, their distal ends are disposed to form a cone by means of appropriate arrangement taking their varying length into consideration.
- the distal portions of the electrodes 2, 2', 2" extending from their conical distal tips 3, 3', 3" in a proximal direction are embedded in a first glue matrix 5, which abuts a second glue matrix 6.
- the interface 9 between the matrices 5, 6 is disposed in a plane transverse to axis A.
- the tip of the distal cone 7 is comprised by the first glue matrix 5.
- each electrode 2, 2', 2" is connected to a thin and flexible electrically conductive leads 4, 4', 4", respectively.
- the leads 4, 4', 4" are assembled in a multiple electrode lead line 8 connected to an electronic unit (not shown) for administering electric stimulation through the electrodes 2, 4', 2'" and/or for recording electrical signals sensed by the electrodes 2, 2', 2".
- the electrodes 2, 2', 2" and their respective leads 4, 4', 4" are insulated (not shown) by a thin layer of polymer lacquer.
- the first glue matrix 5 dissolves substantially more quickly than the second glue matrix 6.
- the electrode array 1 is shown inserted into soft tissue 10, the surface of which is designated by reference no. 11 to a depth making only the leads 4, 4', 4" and the multiple electrode lead line 8 extend from the tissue 10.
- the state of the electrode array 1 in Fig. 2 is immediate upon insertion. After a short period of time such as about a minute, the state of the electrode array 1 shown in Fig. 3 is reached.
- the first glue 5 has dissolved in the aqueous interstitial fluid of the tissue 10. Distal end portions of the electrodes 2, 2', etc. are now unrestrained in their lateral movement, in particular at their tips 3, 3'.
- the proximal portions of the electrodes 2, 2', etc. are however still embedded in the second glue matrix 6, which only dissolves so slowly that even a radially outermost disposed electrode 3 remains embedded in the second glue matrix 6 until the first glue matrix 5 has fully dissolved.
- the dissolution of the second glue matrix 6 consumes at least 10 minutes; at its end the state shown in Fig. 4 is reached, in which each electrode 2, 2' is capable of axial or lateral movement in the tissue 10 unimpeded by neighbouring electrodes 2' and 2, respectively.
- the second embodiment of the electrode array 101 of the invention shown in Fig. 5 differs from the embodiment of Fig. 1 in that it comprises two kinds of electrodes, a centrally disposed electrode 102 with a conical distal tip 103 around which lateral electrodes 102a, 102a'; 102b, 102b' of varying lengths having tips 103a, 103a'; 103b, 103b' at their distal ends slanting in a radial direction are disposed symmetrically.
- each electrode 102; 102a, 102a'; 102b, 102b' is connected to a thin flexible electrically conduction lead 104; 104a, 104a'; 104b, 104b', respectively, which are combined at a short distance from the proximal end of the electrode array 101 in a multiple electrode lead line 108 of same function as the multiple electrode lead line 8 of the first embodiment.
- distal portions of the electrodes 102; 102a, 102a'; 102b, 102b' are embedded in a first matrix glue 105 extending to a cone-formed interface 109 with a second matrix glue 106 extending to their proximal ends.
- the first and second matrix glues 105, 106 are of the same kind as the glues 5, 6 of the first embodiment.
- the distal tip 103 of the distal cone of the electrode array 101 is formed by the tip of an electrode, that is, the tip 103 of the central electrode 102.
- the function of the slanting tips 103a, 103a'; 103b, 103b' is explained below in connection with a third embodiment of the electrode array of the invention.
- the third embodiment of the electrode array 201 of the invention shown in Figs. 6 and 9 differs from the embodiment of Fig. 5 in that the central electrode 103 has been exchanged for insertion rod 214 ending in a conical distal tip 213.
- the insertion rod 213 extends from the proximal end of the electrode array 201 with a length suitable for manual handing of the electrode array 201 during insertion into soft tissue.
- Electrodes 202a, 202a'; 202b, 202b' of varying length having tips 203a, 203a'; 203b, 203b' at their distal ends slanting in a radial direction are disposed symmetrically around the insertion rod 214.
- each electrode 202a; 202a'; 202b, 202b' is connected to a thin flexible electrically conduction lead 204a, 204a'; 204b, 204b', respectively, which leads are combined at a short distance from the proximal end of the electrode array 201 in a multiple electrode lead line 208 of same function as the cable 8 of the first embodiment.
- distal portions of the electrodes 202a, 202a'; 202b, 202b' are embedded in a first matrix glue 205 extending to an interface 209 with a second matrix glue 206 extending to their proximal ends.
- the first and second matrix glues 205, 206 are of the same kind as the glues 5, 6 of the first embodiment.
- the distal cone of the electrode array 201 is formed by the tip 213 of the insertion rod 214.
- the function of the slanting tips 203a, 203a'; 203b, 203b' is evident from Fig. 7, in which the first matrix glue of the electrode array 201 has been dissolved, whereas the second matrix glue still holds proximal portions of the electrodes 202a, 202a'; 202b, 202b 1 embedded.
- Distal end portions of the electrodes 202a, 202a'; 202b, 202b' comprising the slanting tips 203a, 203a'; 203b, 203b', respectively are now no longer restrained in their lateral movement.
- Pushing the electrode array 201 further into soft tissue (not shown in Fig. 7) in the direction indicated by arrow S will deflect the slanting tips 203a, 203a'; 203b, 203b' outwardly, that is, in a direction away from the central insertion rod 214, as indicated by dotted arrows P a , P a - and P b , P b -.
- the slanting electrode tips 203a, 203a'; 203b, 203b' thus provide an unfolding means for the respective electrodes 202a, 202a'; 202b, 202b' and an anchoring means for the electrode array 201.
- each electrode 202a, 202a'; 202b, 202b' is connected to a thin electrically conducting lead 204a, 204a'; 204b, 204b', respectively, which leads are combined in a multiple electrode lead line 208.
- Fig. 8 differs from the embodiment of Fig. 1 in that the electrodes 302a, 302a'; 302b, 302b' of varying length and provided with conical tips 303a; 303a'; 303b, 303b' have distal terminal sections 316a, 316a'; 316b, 316' bent away radially from the central axis M of the electrode array 303.
- each electrode 302a; 302a'; 302b, 302b' is connected to a thin flexible electrically conduction lead 304a, 304a'; 304b, 304b', respectively, which leads are combined at a short distance from the proximal end of the electrode array 301 in a multiple electrode lead line 308 of same function as the cable 8 of the first embodiment.
- a thin flexible electrically conduction lead 304a, 304a'; 304b, 304b' respectively, which leads are combined at a short distance from the proximal end of the electrode array 301 in a multiple electrode lead line 308 of same function as the cable 8 of the first embodiment.
- distal portions of the electrodes 302a, 302a'; 302b, 302b' are embedded in a first matrix glue section 305.
- Portions of the electrodes 302a, 302a'; 302b, 302b' extending from their proximal ends are embedded in a second matrix glue section 306, which however does not extend to the first matrix glue section 305. Instead, a third matrix glue section 315 is disposed between glue sections 305 and 306.
- the dissolution properties of the third matrix glue section 315 is similar to that of the second matrix glue section 306 but, in addition, the third matrix glue section 315 does swell before dissolving, thereby pushing the distal portions 316a, 316a'; 316b, 316' of the electrodes 302a, 302a'; 302b,
- the first and second matrix glues 305, 306 are of the same kind as the glues 5, 6 of the first embodiment.
- the distal cone of the electrode array 301 has a rounded tip 313 comprised by the first matrix portion 305.
- the bent configuration of the distal end section of the electrodes 302a, 302a'; 302b, 302b' controls their unfolding along paths Q a , Q a - and Q b - , Q b ' upon dissolution of the first glue matrix 306 and pushing of the electrode array 301 in a proximal direction indicated by arrow T.
- each electrode 302a, 302a'; 302b, 302b" is connected to a thin electrically conducting lead 304a, 304a'; 304b, 304b', respectively, which leads are combined in a multiple electrode lead line 308.
- Transverse sections through other preferred embodiments are shown in Figs. 10 to 13.
- the fifth embodiment of the electrode array 401 of the invention illustrated in Fig. 10 is elliptical in a transverse section.
- a multitude of thin flexible electrodes 402 are disposed around a central optical fibre 417, by which radiation can be conducted to a tissue site of interest; optionally radiation reflected from the tissue can be adduced to a radiation recording instrument such as an IR-instrument (not shown).
- the electrodes 402 are embedded in first and second 406 glue matrix sections.
- the electrode array 401 shares principal design features of the aforementioned embodiments of the invention.
- Fig. 13 is a combination of two flat electrode arrays of identical shape, each corresponding to an electrode array of the seventh embodiment, with their flat faces superimposed and joined by spaced glue sections 718.
- Their electrodes have reference numbers 702a, 702b, and their second glue sections in which they are shown imbedded have reference numbers 706a, 706 b, respectively.
- the ninth embodiment of the electrode array 801 shown in Fig. 14 corresponds to the embodiment of Fig. 6 except for the electrode tips 803a, 803a'; 803b, 803b' not being imbedded in a first matrix glue 805 (from which they thus extend), and by the insertion rod 814 not extending through the entire electrode array to its distal end. Instead the insertion rod 814 is mounted in a central cylindrical axial pocket in flat proximal face of the second glue matrix section 806 electrode array by means of a glue 818. The dissolution rate of the glue 818 in an aqueous environment is substantially higher than the dissolution rate of the second glue matrix section 806.
- the electrodes 802a, 802a'; 802b, 802b' have tips 803a, 803a'; 803b, 803b' slanting in a proximal direction towards the central axis of the electrode array 801 (not indicated).
- Their distal portions are embedded in a first matrix glue section 805 of a higher dissolution rate in aqueous media than that of the second matrix glue section 806 in which their proximal portions that are embedded.
- the interface 809 between the first and second glue matrix sections is disposed proximally of the conical distal portion of the electrode array 801.
- each electrode 802a, 802a'; 802b, 802b' is attached a thin flexible electrically conducting lead 804a, 804a'; 804b, 804b', respectively; at a short distance from the proximal end of the electrode array 801 the leads are 804a, 804a'; 804b, 804b' are combined in a multiple electrode lead line 808.
- a prior art electrode 902 (Figs. 15, 15a) incorporated in an electrode array 901 of the invention comprises a barb 920 that ends in a sharp point 921 extending in a proximal direction from blunt electrode tip 903.
- the barb 920 is integral with the electrode 902, which is manufactured from very thin metal wire. Except for the barb 920 and its tip 921 (pointed hatch sections in Figs. 15, 15a) the electrode 902 is insulated by a thin layer of polymer (not shown).
- the curved barb 209 is kept in resilient abutment with the electrode 902 by embedment in a first glue matrix 905.
- the proximal part of the electrode comprises a terminal proximal section of the electrode 902 embedded in a second glue matrix 906.
- a thin wire lead 904 is soldered at 925.
- a micro-signalamplifier 926 is integral with the lead 904.
- the barb 902 is no longer restricted in its movement, and assumes its physically unrestricted bent configuration shown in Fig. 15a.
- the proximal end of the electrode 902 however still remains embedded in the second glue matrix 906.
- the EA of the invention is primarily intended for treatment of human with pain, epilepsy, depression, injuries or degeneration in the brain and/or the spinal cord; as an interface in brain-computer communication enabling prosthesis control or control of skeletal muscle; for control of endocrine and exocrine organ function; and as a research tool in studies of neuronal network function, and plasticity, development and aging of the nervous system.
- the electrode array of the invention may particularly serve to aid patients with brain or spinal damage of various kind by recording signals from remaining neurons in case of, e.g., stroke or degenerative disease and/or to stimulate neurons to compensate for lost functions. Similar uses are possible in animals.
- the electrode array can be used to relieve pain by stimulation of analgesic brain stem centres, such as nuclei in the periaqueductal grey substance; to relieve or decrease tremor in Parkinson's disease, choreatic and other involuntary movements by stimulation within the basal ganglia or associated nuclei; to boost memory by stimulation of cholinergic and/or monoaminergic nuclei in case of Alzheimer's disease or other degenerative diseases; to control mood, aggression, depression, anxiety, phobia, affect, sexual over-activity, impotence, eating disturbances by stimulation of limbic centres or other brain areas; to rehabilitate patients after stroke or damage of the brain/spinal cord by stimulation of remaining connections in cortex cerebri or descending motor pathways; to re-establish control of spinal functions such
- the electrode array of the invention may be used for electrolytic lesioning of specific tissue sites by passing electrical currents through the tissue.
- Current of a suitable strength can also be used to heat the electrode filaments and thereby increase the temperature to a level at which neighbouring cells are killed.
- the intensity of the current administered via the electrode bundle is chosen to be adequate for accomplishing cell death in a tissue volume adjacent to the front end of the electrode bundle.
- the electrode array can be used to lesion tumours or CNS sites that developed abnormal activity after e.g. an insult or a degenerative disease.
- Examples of combined recording and stimulation comprise: monitoring of epileptic attacks by electrodes implanted into the epileptic focus coupled with a system for administration of antiepileptic drugs and/or electrical pulses; compensating for lost connections in the motor system by recording central motor commands, and stimulating the executive parts of the motor system distal of the lesions; selecting a site producing abnormal electrical activity by recording neuronal activity at the site, followed by lesioning the tissue at the site by administration via the electrode bundle of a current of adequate strength for an adequate period of time.
- the electrode array of the invention can also serve as an interface for communication with computers and neuroprostheses. In patients with damages to the peripheral nervous system, it can be useful to record command signals from the CNS. These signals can be interpreted by computer programs and used to control neuroprostheses such as artificial hands or feet, and also to control stimulation of muscles and organs such as the bladder and the bowel.
- the electrode array of the invention may be used to measure the activity and to control the secretion of hormones from exocrine or endocrine organs, in patients with deficient hormone secretion or regulation
- the use of the electrode array of the invention for studies of normal as well as abnormal functions of the brain and the spinal cord can include, for instance, monitoring pain related neuronal activity, for example in the primary somatosensory cortex or in the limbic system, thereby enabling assessments of the potency of potentially analgesic compounds or analgesic treatments.
- Another example is the monitoring of epileptic activity in animals to test the efficacy of antiepileptic compounds or treatments.
- Further examples include recordings of activity in neuronal centres that regulate sleep to study sleep disorders, and recordings of neuronal centres that regulate appetite to study problems related to obesity. In such studies it is necessary to record neuronal activity and to simultaneously interact with the undisturbed central nervous system.
- the electrode array of the invention is implanted in the CNS for a long time. It can also be used as a carrier for biosensors that measure, for instance, the concentration levels of various molecules in the tissue.
- the electrode array of the invention can be used to mediate signals from fluophores introduced in the cells by, for example knock-in gene techniques.
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- Electrochromic Elements, Electrophoresis, Or Variable Reflection Or Absorption Elements (AREA)
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Abstract
Description
Claims
Priority Applications (10)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE602008006677T DE602008006677D1 (en) | 2007-01-23 | 2008-01-23 | LEAD SERIES |
| EA200901026A EA014361B1 (en) | 2007-01-23 | 2008-01-23 | Electrode array |
| EP08705224A EP2117426B1 (en) | 2007-01-23 | 2008-01-23 | Electrode array |
| AT08705224T ATE507773T1 (en) | 2007-01-23 | 2008-01-23 | ELECTRODE SERIES |
| DK08705224.7T DK2117426T3 (en) | 2007-01-23 | 2008-01-23 | electrode array |
| CN2008800026625A CN101616630B (en) | 2007-01-23 | 2008-01-23 | Electrode array |
| JP2009546345A JP5074521B2 (en) | 2007-01-23 | 2008-01-23 | Electrode array |
| PL08705224T PL2117426T3 (en) | 2007-01-23 | 2008-01-23 | Electrode array |
| CA2676021A CA2676021C (en) | 2007-01-23 | 2008-01-23 | Dissociating multi-channel electrode |
| AU2008208093A AU2008208093B2 (en) | 2007-01-23 | 2008-01-23 | Electrode array |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US89703407P | 2007-01-23 | 2007-01-23 | |
| US60/897,034 | 2007-01-23 | ||
| SE0701150-5 | 2007-05-14 | ||
| SE0701150 | 2007-05-14 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2008091197A1 true WO2008091197A1 (en) | 2008-07-31 |
Family
ID=39644706
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/SE2008/000051 Ceased WO2008091197A1 (en) | 2007-01-23 | 2008-01-23 | Electrode array |
Country Status (10)
| Country | Link |
|---|---|
| EP (1) | EP2117426B1 (en) |
| JP (1) | JP5074521B2 (en) |
| AT (1) | ATE507773T1 (en) |
| AU (1) | AU2008208093B2 (en) |
| CA (1) | CA2676021C (en) |
| DE (1) | DE602008006677D1 (en) |
| DK (1) | DK2117426T3 (en) |
| EA (1) | EA014361B1 (en) |
| PL (1) | PL2117426T3 (en) |
| WO (1) | WO2008091197A1 (en) |
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- 2008-01-23 DE DE602008006677T patent/DE602008006677D1/en active Active
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| CN113194859A (en) * | 2018-12-13 | 2021-07-30 | 纽韦弗医疗设备公司 | Energy delivery device and related system |
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| EP4259270A4 (en) * | 2020-12-10 | 2024-10-30 | Neuronano AB | DEVICE FOR INTRODUCING MICROFILAMENTS INTO SOFT TISSUE |
| WO2022124957A1 (en) * | 2020-12-10 | 2022-06-16 | Neuronano Ab | Device for insertion of microfilaments in soft tissue |
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| US12551658B2 (en) | 2023-03-16 | 2026-02-17 | St. Jude Medical, Cardiology Division, Inc. | Steerable introducer with slide block divider |
Also Published As
| Publication number | Publication date |
|---|---|
| JP5074521B2 (en) | 2012-11-14 |
| EP2117426A4 (en) | 2010-02-10 |
| EA014361B1 (en) | 2010-10-29 |
| AU2008208093B2 (en) | 2012-05-03 |
| CA2676021C (en) | 2013-12-31 |
| ATE507773T1 (en) | 2011-05-15 |
| EP2117426A1 (en) | 2009-11-18 |
| EA200901026A1 (en) | 2010-02-26 |
| CA2676021A1 (en) | 2008-07-31 |
| EP2117426B1 (en) | 2011-05-04 |
| DK2117426T3 (en) | 2011-08-22 |
| DE602008006677D1 (en) | 2011-06-16 |
| JP2010516327A (en) | 2010-05-20 |
| AU2008208093A1 (en) | 2008-07-31 |
| PL2117426T3 (en) | 2011-10-31 |
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